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Cardiac Stress Test Induced by Dobutamine and Monitored by Cardiac Catheterization in Mice
Published on: February 10, 2013
Simulated microgravity produces attenuated baroreflex-mediated pressor, chronotropic, and inotropic responses in mice
Albert S Jung1, Robert Harrison, Kwang H Lee
1Department of Biomedical Engineering, Critical Care Medicine, Johns Hopkins Univ. School of Medicine, 600 N Wolfe St., Baltimore, MD 21287, USA.
Abstract:
Whether myocardial contractile impairment contributes to orthostatic intolerance (OI) is controversial. Accordingly, we used transient bilateral carotid occlusion (TBCO) to compare the in vivo pressor, chronotropic, and inotropic responses (parts 1 and 2) to open-loop selective carotid baroreceptor unloading in anesthetized mice. In part 3, in vitro myocyte responses to isoproterenol in mice exposed to hindlimb unweighting (HLU) for approximately 2 wk were determined. Heart rate (HR) and mean arterial pressure (MAP) responses to TBCO were measured. In control mice, TBCO increased HR (15 +/- 2 beats/min, P < 0.05) and MAP (17 +/- 2 mmHg, P < 0.05). These responses were markedly potentiated in denervated control (DC) mice, in which the aortic depressor nerve and sympathetic trunk were sectioned before measurement. Baroreflex responses to TBCO were eliminated by blockade with hexamethonium bromide (10 microg/kg). In HLU (denervated) mice, HR and MAP responses were reduced approximately 70% compared with DC mice. In part 2, myocardial contractile responses to TBCO were measured with a left ventricular micromanometer-conductance catheter. TBCO in DC mice increased the slope of the end-systolic pressure-volume relation (end-systolic elastance) by 86 +/- 13%. This inotropic response was attenuated (14 +/- 10%, P < 0.005) after HLU. In part 3, contractile responses to isoproterenol were impaired in myocytes isolated from HLU mice. In conclusion, selective carotid baroreceptor unloading stimulates HR, blood pressure, and myocardial contractility, and HLU attenuates each response. These findings have important implications for the management of OI in astronauts, the elderly, and individuals subjected to prolonged bed rest.
Insights
Orthostatic intolerance (OI) may involve impaired heart contractility. Hindlimb unweighting (HLU) in mice reduced responses to baroreceptor unloading, suggesting HLU impairs cardiovascular function and myocardial contractility.
Area of Science:
- Cardiovascular Physiology
- Baroreceptor Function
- Myocardial Contractility
Background:
- The contribution of myocardial contractile impairment to orthostatic intolerance (OI) remains debated.
- Understanding baroreflex control and cardiac function is crucial for managing OI.
- Hindlimb unweighting (HLU) is a model for microgravity effects and prolonged bed rest.
Purpose of the Study:
- To investigate the in vivo pressor, chronotropic, and inotropic responses to selective carotid baroreceptor unloading.
- To determine the impact of HLU on baroreflex sensitivity and myocardial contractility.
- To assess in vitro myocyte responses following HLU.
Main Methods:
- Transient bilateral carotid occlusion (TBCO) was used to unload baroreceptors in anesthetized mice.
- Measurements included heart rate (HR), mean arterial pressure (MAP), and myocardial contractility (end-systolic elastance).
- Experiments were conducted in control, denervated control (DC), and HLU mice, with in vitro myocyte studies.
Main Results:
- TBCO increased HR and MAP in control mice; these responses were potentiated in DC mice.
- HLU significantly attenuated HR, MAP, and myocardial contractility responses to TBCO compared to DC mice.
- Myocytes from HLU mice showed impaired contractile responses to isoproterenol.
Conclusions:
- Selective carotid baroreceptor unloading stimulates heart rate, blood pressure, and myocardial contractility.
- HLU significantly attenuates these cardiovascular and myocardial responses.
- Findings suggest HLU impairs baroreflex function and cardiac contractility, relevant for OI management in astronauts, elderly, and bedridden individuals.

